WO2021253987A1 - Procédé de commande, dispositif de commande, système de climatisation et support d'enregistrement lisible par ordinateur - Google Patents

Procédé de commande, dispositif de commande, système de climatisation et support d'enregistrement lisible par ordinateur Download PDF

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Publication number
WO2021253987A1
WO2021253987A1 PCT/CN2021/089677 CN2021089677W WO2021253987A1 WO 2021253987 A1 WO2021253987 A1 WO 2021253987A1 CN 2021089677 W CN2021089677 W CN 2021089677W WO 2021253987 A1 WO2021253987 A1 WO 2021253987A1
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WIPO (PCT)
Prior art keywords
mode
operation mode
hydraulic device
indoor unit
executed
Prior art date
Application number
PCT/CN2021/089677
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English (en)
Chinese (zh)
Inventor
尚亚浩
甄锦鹏
钟文朝
Original Assignee
广东美的制冷设备有限公司
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Priority to EP21826430.7A priority Critical patent/EP4141335A4/fr
Publication of WO2021253987A1 publication Critical patent/WO2021253987A1/fr

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F1/00Room units for air-conditioning, e.g. separate or self-contained units or units receiving primary air from a central station
    • F24F1/0003Room units for air-conditioning, e.g. separate or self-contained units or units receiving primary air from a central station characterised by a split arrangement, wherein parts of the air-conditioning system, e.g. evaporator and condenser, are in separately located units
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/50Control or safety arrangements characterised by user interfaces or communication
    • F24F11/61Control or safety arrangements characterised by user interfaces or communication using timers
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/62Control or safety arrangements characterised by the type of control or by internal processing, e.g. using fuzzy logic, adaptive control or estimation of values
    • F24F11/63Electronic processing
    • F24F11/64Electronic processing using pre-stored data
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/62Control or safety arrangements characterised by the type of control or by internal processing, e.g. using fuzzy logic, adaptive control or estimation of values
    • F24F11/63Electronic processing
    • F24F11/65Electronic processing for selecting an operating mode
    • F24F11/67Switching between heating and cooling modes
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F5/00Air-conditioning systems or apparatus not covered by F24F1/00 or F24F3/00, e.g. using solar heat or combined with household units such as an oven or water heater
    • F24F5/0096Air-conditioning systems or apparatus not covered by F24F1/00 or F24F3/00, e.g. using solar heat or combined with household units such as an oven or water heater combined with domestic apparatus
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F2221/00Details or features not otherwise provided for
    • F24F2221/18Details or features not otherwise provided for combined with domestic apparatus
    • F24F2221/183Details or features not otherwise provided for combined with domestic apparatus combined with a hot-water boiler
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F2221/00Details or features not otherwise provided for
    • F24F2221/54Heating and cooling, simultaneously or alternatively

Definitions

  • This application relates to the field of air conditioning technology, and in particular to a control method, a control device, an air conditioning system, and a computer-readable storage medium.
  • the multi-line air-conditioning system judges the final operation mode of the outdoor unit according to the mode conflict principle when each internal unit is set to different modes.
  • the multi-line air-conditioning system also has a hydraulic device for producing hot water. If the hydraulic device is running according to the original logic, the hydraulic device needs to be queued, or the load of the outdoor unit is increased, resulting in multi-line
  • the insufficient capacity of the air-conditioning system results in the poor hot water production effect of the hydraulic device, which affects the user experience.
  • the embodiments of the present application provide a control method, a control device, an air conditioning system, and a computer-readable storage medium.
  • a control method provided by an embodiment of the present application is used in an air-conditioning system, and the air-conditioning system includes:
  • the outdoor unit The outdoor unit
  • An indoor unit the outdoor unit is connected to the indoor unit and the hydraulic device,
  • the control method includes:
  • the indoor unit In the case that the indoor unit is running first, acquiring the mode instruction of the hydraulic device and the current operation mode of the indoor unit, and the mode instruction of the hydraulic device includes the operation mode to be executed by the hydraulic device;
  • Determining the final operation mode of the air conditioning system according to the operation mode to be executed by the hydraulic device and the current operation mode of the indoor unit, or according to the operation mode to be executed by the hydraulic device;
  • the hydraulic device is running first, acquiring the mode instruction of the indoor unit and the current operation mode of the hydraulic device, and the mode instruction of the indoor unit includes the operation mode to be executed by the indoor unit;
  • the operation of the air conditioning system is controlled in the final operation mode.
  • the final operation mode of the air-conditioning system is determined according to the operation mode of the indoor unit and the hydraulic device, which can effectively avoid the poor hot water heating effect of the hydraulic device due to insufficient capacity, thereby increasing the reliability and reliability of the air-conditioning system. Comfort.
  • the operation mode of the hydraulic device includes a heating mode, a cooling mode, and a hot water mode
  • the final operation mode includes a mutually exclusive operation mode and a first intermittent operation mode
  • Determining the final operation mode of the air conditioning system according to the operation mode to be executed by the hydraulic device and the current operation of the indoor unit, or according to the operation mode to be executed by the hydraulic device, includes:
  • the operating mode to be executed by the hydraulic device is the heating mode or the cooling mode, determining that the final operating mode is the mutually exclusive operating mode;
  • the operating mode to be executed by the hydraulic device is the hot water heating mode, determining that the final operating mode is the first intermittent operating mode;
  • Determining the final operation mode of the air conditioning system according to the operation mode to be executed by the indoor unit and the current operation mode of the hydraulic device, or according to the current operation mode of the hydraulic device includes:
  • the current operation mode of the hydraulic device is the heating mode or the cooling mode
  • determining that the final operation mode is the mutually exclusive operation mode
  • the final operation mode is the first intermittent operation mode.
  • the operation mode of the hydraulic device includes a heating mode, a cooling mode, and a hot water mode
  • the operation mode of the indoor unit includes a heating mode, a cooling mode, and a fresh air mode
  • the final operation mode Including simultaneous operation mode, mode conflict mode and the first intermittent operation mode
  • Determining the final operation mode of the air conditioning system according to the operation mode to be executed by the hydraulic device and the current operation mode of the indoor unit, or according to the operation mode to be executed by the hydraulic device, includes:
  • the operating mode to be executed by the hydraulic device is the heating mode and the current operating mode of the indoor unit is the heating mode, or when the operating mode to be executed by the hydraulic device is the cooling Mode and the current operation mode of the indoor unit is the cooling mode, or when the operation mode to be executed by the hydraulic device is the cooling mode and the current operation mode of the indoor unit is the fresh air mode
  • the final operation mode is the simultaneous operation mode
  • the operation mode to be executed by the hydraulic device is the heating mode and the current operation mode of the indoor unit is the cooling mode, or when the operation mode to be executed by the hydraulic device is the heating mode and the current operation mode.
  • the current operation mode of the indoor unit is the fresh air mode, or when the operation mode to be executed by the hydraulic device is the cooling mode and the current operation mode of the indoor unit is the heating mode , Determining that the final operating mode is the mode conflict mode;
  • the operating mode to be executed by the hydraulic device is the hot water heating mode, determining that the final operating mode is the first intermittent operating mode;
  • Determining the final operation mode of the air conditioning system according to the operation mode to be executed by the indoor unit and the current operation mode of the hydraulic device, or according to the current operation mode of the hydraulic device includes:
  • the operation mode to be executed of the indoor unit is the heating mode and the current operation mode of the hydraulic device is the heating mode, or the operation mode to be executed of the indoor unit is the cooling Mode and the current operation mode of the hydraulic device is the cooling mode, or when the operation mode to be executed by the indoor unit is the fresh air mode and the current operation mode of the hydraulic device is the cooling mode
  • the final operation mode is the simultaneous operation mode
  • the operation mode to be executed by the indoor unit is the cooling mode and the current operation mode of the hydraulic device is the heating mode, or the operation mode to be executed by the indoor unit is the fresh air mode
  • the current operation mode of the hydraulic device is the heating mode, or when the operation mode to be executed by the indoor unit is the heating mode and the current operation mode of the hydraulic device is the cooling mode
  • the final operation mode is the mode conflict mode
  • the final operation mode is the first intermittent operation mode.
  • the first intermittent operation mode is, when the operation mode of the hydraulic device is the hot water heating mode, the outdoor unit is controlled in the hot water heating mode of the hydraulic device run,
  • the operation of the air-conditioning system is controlled in the operation mode of the indoor unit.
  • the operation mode of the hydraulic device includes a heating mode, a cooling mode, and a hot water mode
  • the final operation mode includes a mutually exclusive operation mode and a second intermittent operation mode
  • Determining the final operation mode of the air conditioning system according to the operation mode to be executed by the hydraulic device and the current operation mode of the indoor unit, or according to the operation mode to be executed by the hydraulic device, includes:
  • the operating mode to be executed by the hydraulic device is the heating mode or the cooling mode, determining that the final operating mode is the mutually exclusive operating mode;
  • the operation mode to be executed by the hydraulic device is the hot water heating mode
  • determining that the final operation mode is the second intermittent operation mode
  • Determining the final operation mode of the air conditioning system according to the operation mode to be executed by the indoor unit and the current operation mode of the hydraulic device, or according to the current operation mode of the hydraulic device includes:
  • the current operation mode of the hydraulic device is the heating mode or the cooling mode
  • determining that the final operation mode is the mutually exclusive operation mode
  • the final operation mode is the second intermittent operation mode.
  • the operation mode of the hydraulic device includes a heating mode, a cooling mode, and a hot water mode
  • the operation mode of the indoor unit includes a heating mode, a cooling mode, and a fresh air mode
  • the final operation mode Including simultaneous operation mode, mode conflict mode and second intermittent operation mode
  • Determining the final operation mode of the air conditioning system according to the operation mode to be executed by the hydraulic device and the current operation mode of the indoor unit, or according to the operation mode to be executed by the hydraulic device, includes:
  • the operating mode to be executed by the hydraulic device is the hot water mode and the current operating mode of the indoor unit is the heating mode
  • the operating mode to be executed by the hydraulic device is the heating mode
  • the operation mode to be executed by the hydraulic device is the cooling mode and the current operation mode of the indoor unit is the In the case of the refrigeration mode, or in the case that the operation mode to be executed by the hydraulic device is the refrigeration mode and the current operation mode of the indoor unit is the fresh air mode
  • the operation mode to be executed by the hydraulic device is the heating mode and the current operation mode of the indoor unit is the cooling mode, or when the operation mode to be executed by the hydraulic device is the heating mode and the current operation mode.
  • the current operation mode of the indoor unit is the fresh air mode, or when the operation mode to be executed by the hydraulic device is the cooling mode and the current operation mode of the indoor unit is the heating mode , Determining that the final operating mode is the mode conflict mode;
  • the operating mode to be executed by the hydraulic device is the hot water heating mode and the current operating mode of the indoor unit is the cooling mode, or when the operating mode to be executed by the hydraulic device is the hot water heating If the mode and the current operation mode of the indoor unit are the heating mode, it is determined that the final operation mode is the second intermittent operation mode; according to the operation mode to be executed by the indoor unit and the hydraulic device.
  • the current operating mode of the air-conditioning system, or the final operating mode of the air-conditioning system according to the current operating mode of the hydraulic device includes:
  • the operation mode to be executed by the indoor unit is the heating mode and the current operation mode of the hydraulic device is the hot water mode
  • the operation mode to be executed by the indoor unit is the When the heating mode and the current operation mode of the hydraulic device are the heating mode, or when the operation mode to be executed by the indoor unit is the cooling mode and the current operation mode of the hydraulic device is the In the case of the cooling mode, or when the operation mode of the indoor unit to be executed is the fresh air mode and the current operation mode of the hydraulic device is the cooling mode, it is determined that the final operation mode is the simultaneous Operating mode
  • the current operation mode of the indoor unit to be executed is the cooling mode and the current operation mode of the hydraulic device is the heating mode, or the operation mode to be executed of the indoor unit is the fresh air Mode and the current operation mode of the hydraulic device is the heating mode, or when the operation mode to be executed by the indoor unit is the heating mode and the current operation mode of the hydraulic device is the cooling
  • determining that the final operation mode is the mode conflict mode
  • the operation mode to be executed by the indoor unit is the cooling mode and the current operation mode of the hydraulic device is the hot water heating mode, or the operation mode to be executed by the indoor unit is the fresh air If the mode and the current operation mode of the hydraulic device are the hot water heating mode, it is determined that the final operation mode is the second intermittent operation mode.
  • the mutually exclusive operation mode is to control the operation of the outdoor unit in the operation mode of the hydraulic device and the indoor unit that runs first, and the temperature of the first running one satisfies
  • the operation of the outdoor unit is controlled in another operation mode under the second preset temperature condition or in the case that the first operation is shut down.
  • the mode conflict mode is to control the operation of the outdoor unit in the operation mode of the first operating mode of the hydraulic device and the indoor unit,
  • control the other one In the case of a mode conflict between the current operation mode of the first running one and the other running mode to be executed, control the other one to enter the standby state and issue a mode conflict prompt until the temperature of the first running one The one that satisfies the third preset temperature condition or the one that runs first is shut down.
  • the second intermittent operation mode is to control the operation of the outdoor unit in the operation mode of the first operating mode of the hydraulic device and the indoor unit,
  • the operation to be executed by the hydraulic device The mode controls the operation of the outdoor unit
  • the indoor unit controls the operation of the outdoor unit.
  • An embodiment of the application provides a control device for an air-conditioning system, the air-conditioning system includes:
  • the outdoor unit The outdoor unit
  • An indoor unit the outdoor unit is connected to the indoor unit and the hydraulic device,
  • the control device includes:
  • the first acquisition module is configured to acquire the mode instruction of the hydraulic device and the current operation mode of the indoor unit when the indoor unit is running first, and the mode instruction of the hydraulic device includes the hydraulic device to be executed Mode of operation;
  • the first determining module is configured to determine the final operation mode of the air conditioning system according to the operation mode to be executed by the hydraulic device and the current operation mode of the indoor unit, or according to the operation mode to be executed by the hydraulic device;
  • the second acquisition module is configured to acquire the mode instruction of the indoor unit and the current operation mode of the hydraulic device when the hydraulic device is running first, and the mode instruction of the indoor unit includes the indoor unit to be executed Mode of operation;
  • the second determining module is configured to determine the final operation mode of the air conditioning system according to the operation mode to be executed by the indoor unit and the current operation mode of the hydraulic device, or according to the current operation mode of the hydraulic device;
  • the control module is used to control the operation of the air conditioning system in the final operation mode.
  • the final operation mode of the air-conditioning system is determined according to the operation mode of the indoor unit and the hydraulic device, which can effectively avoid the poor hot water heating effect of the hydraulic device due to insufficient capacity, thereby increasing the reliability and reliability of the air-conditioning system. Comfort.
  • An air conditioning system provided by an embodiment of the present application includes the control device described in the foregoing embodiment.
  • the final operation mode of the air-conditioning system is determined according to the operation mode of the indoor unit and the hydraulic device, which can effectively avoid the poor hot water heating effect of the hydraulic device due to insufficient capacity, thereby increasing the reliability and reliability of the air-conditioning system. Comfort.
  • An air conditioning system provided by an embodiment of the present application includes a memory, a processor, and computer-executable instructions stored in the memory, and the processor is configured to execute the computer-executable instructions to implement any of the foregoing implementations The steps of the control method described in the method.
  • the final operation mode of the air-conditioning system is determined according to the operation mode of the indoor unit and the hydraulic device, which can effectively avoid the poor hot water heating effect of the hydraulic device due to insufficient capacity, thereby increasing the reliability and reliability of the air-conditioning system. Comfort.
  • the embodiment of the present application provides a non-volatile computer-readable storage medium containing computer-executable instructions, and when the computer-executable instructions are executed by one or more processors, the processor is caused to execute the above Steps of the control method described in any one of the embodiments.
  • Fig. 1 is a flowchart of a control method according to an embodiment of the present application
  • FIG. 2 is another flowchart of the control method of the embodiment of the present application.
  • Fig. 3 is a partial structural diagram of an air conditioning system according to an embodiment of the present application.
  • Fig. 4 is a block diagram of an air conditioning system according to an embodiment of the present application.
  • FIG. 5 is a schematic diagram of another part of the structure of the air-conditioning system according to the embodiment of the present application.
  • FIG. 14 is a schematic diagram of another part of the structure of the air conditioning system according to the embodiment of the present application.
  • 15 is a schematic diagram of another part of the structure of the air-conditioning system according to the embodiment of the present application.
  • Fig. 16 is another block diagram of the air-conditioning system according to the embodiment of the present application.
  • Air conditioning system 100 control device 200, air conditioning system 300;
  • Outdoor unit 11 hydraulic device 13, indoor unit 15, indoor unit 17;
  • Compressor 21 four-way valve 23, outdoor heat exchanger 25, first valve 27, second valve 29;
  • the first heat exchanger 31 the electric heating element 33, the water tank 35, and the coil 37;
  • the memory 310 and the processor 330 are identical to each other.
  • first and second are only used for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of indicated technical features. Therefore, the features defined with “first” and “second” may explicitly or implicitly include one or more of the features.
  • a plurality of means two or more than two, unless otherwise specifically defined.
  • connection should be understood in a broad sense, for example, it can be a fixed connection or a detachable connection. Connect, or connect in one piece. It can be a mechanical connection or an electrical connection. It can be directly connected, or indirectly connected through an intermediate medium, and it can be a communication between two elements or an interaction relationship between two elements.
  • connection should be understood in a broad sense, for example, it can be a fixed connection or a detachable connection. Connect, or connect in one piece. It can be a mechanical connection or an electrical connection. It can be directly connected, or indirectly connected through an intermediate medium, and it can be a communication between two elements or an interaction relationship between two elements.
  • the air conditioning system 100 includes an outdoor unit 11, a hydraulic device 13 and an indoor unit 15.
  • the outdoor unit 11 is connected to the indoor unit 15 and the hydraulic device 13.
  • control method includes:
  • Step S110 Under the condition that the indoor unit 15 is running first, obtain the mode instruction of the hydraulic device 13 and the current operation mode of the indoor unit 15.
  • the mode instruction of the hydraulic device 13 includes the operation mode to be executed by the hydraulic device 13;
  • Step S130 Determine the final operation mode of the air conditioning system 100 according to the operation mode to be executed by the hydraulic device 13 and the current operation mode of the indoor unit 15, or according to the operation mode to be executed by the hydraulic device 13;
  • Step S140 Control the operation of the air-conditioning system 100 in the final operation mode
  • control method includes:
  • Step S150 Under the condition that the hydraulic device 13 is running first, obtain the mode instruction of the indoor unit 15 and the current operation mode of the hydraulic device 13, and the mode instruction of the indoor unit 15 includes the operation mode of the indoor unit 15 to be executed;
  • Step S170 Determine the final operation mode of the air conditioning system 100 according to the operation mode to be executed by the indoor unit 15 and the current operation mode of the hydraulic device 13, or according to the current operation mode of the hydraulic device 13;
  • Step S180 Control the operation of the air-conditioning system 100 in the final operation mode.
  • the control method of the embodiment of the present application can be implemented by the control device 200 of the embodiment of the present application.
  • the control device 200 is used in the air conditioning system 100.
  • the control device 200 includes a first acquisition module 210, a first determination module 230, a second acquisition module 250, a second determination module 270, and a control module 290.
  • the first acquisition module 210 is used to acquire the mode instruction of the hydraulic device 13 and the current operation mode of the indoor unit 15 when the indoor unit 15 is running first.
  • the mode instruction of the hydraulic device 13 includes the operation mode to be executed by the hydraulic device 13.
  • the first determining module 230 is configured to determine the final operating mode of the air conditioning system 100 according to the operating mode to be executed by the hydraulic device 13 and the current operating mode of the indoor unit 15, or according to the operating mode to be executed by the hydraulic device 13.
  • the second acquisition module 250 is used to acquire the mode instruction of the indoor unit 15 and the current operation mode of the hydraulic device 13 when the hydraulic device 13 is running first.
  • the mode instruction of the indoor unit 15 includes the operation mode of the indoor unit 15 to be executed.
  • the second determining module 270 is configured to determine the final operation mode of the air conditioning system 100 according to the operation mode to be executed by the indoor unit 15 and the current operation mode of the hydraulic device 13, or according to the current operation mode of the hydraulic device 13.
  • the control module 290 is used to control the operation of the air conditioning system 100 in the final operation mode.
  • the final operation mode of the air conditioning system 100 is determined according to the operation mode of the indoor unit 15 and the hydraulic device 13, which can effectively avoid the hot water production of the hydraulic device 13 due to insufficient capacity The effect is poor, and the reliability and comfort of the air conditioning system 100 can be increased.
  • the outdoor unit 11 includes a compressor 21, a four-way valve 23 and an outdoor unit heat exchanger 25.
  • the compressor 21 is the power of the air-conditioning system 100.
  • the purpose of the compressor 21 is to compress a low-temperature refrigerant into a high-temperature refrigerant, and finally the refrigerant will exchange heat with other media in the outdoor heat exchanger 25.
  • the compressor 21 may be a positive displacement compressor, a speed compressor, or the like.
  • the four-way valve 23 switches different channels so that the high-temperature refrigerant compressed by the compressor 21 flows through different pipes, so that the air-conditioning system 100 can switch between the cooling function and the heating function.
  • the four-way valve 23 can connect the D port and the E port, and the C port and the S port, so as to realize the heating function of the air conditioning system 100.
  • the four-way valve 23 can connect the D port and the C port, and connect the E port and the S port, so as to realize the refrigeration function of the air conditioning system 100.
  • the outdoor unit 11 is connected to the indoor unit 15 and the hydraulic device 13, specifically, the outdoor unit 11 communicates with the indoor unit 15 and the hydraulic device 13 to form a pipeline circuit.
  • the outdoor unit 11 includes a first valve 27 and a second valve 29.
  • the first valve 27 is used to switch on and off the pipeline circuit corresponding to the hydraulic device 13.
  • the second valve 29 is used to switch on and off the pipeline circuit corresponding to the indoor unit 15.
  • the hydraulic device 13 has a heating mode, a hot water heating mode, and a cooling mode.
  • the hydraulic device 13 includes a first heat exchanger 31 and an electric heating element 33.
  • the four-way valve 23 connects the D port and the E port and the C port and the S port (that is, the heating function of the hydraulic device 13 is realized), so that the high-temperature refrigerant enters the first heat exchange
  • the heat is released in the device 31; in the case that the hydraulic device 13 is running in the hot water mode, the four-way valve 23 connects the D port and the E port and the C port and the S port and turns on the electric heating element 33 (that is, the hydraulic device 13 is controlled Hot water function) to heat the water in the hydraulic device 13; when the hydraulic device 13 is running in the cooling mode, the four-way valve 23 connects the D port and the C port and the E port and the S port (that is, the hydraulic device 13 Refrigeration function), the high
  • the hydraulic device 13 includes a water inlet 131, a water outlet 133, a water tank 35 and a coil 37.
  • the hydraulic device 13 can deliver the domestic hot water generated in the hot water heating mode to the water tank 35 through the water outlet 133, so as to meet the user's hot water demand.
  • the coil 37 can be installed in an indoor space.
  • the hydraulic device 13 can use the heating mode to make the coil 37 generate warm air, and can also use the cooling mode to make the coil 37 cool the indoor space.
  • the hydraulic device 13 can recover the cooled water in the water tank 35 and the coil 37 through the water inlet 131.
  • the indoor unit 15 has a heating mode, a cooling mode, and a fresh air mode (air supply mode).
  • a heating mode and the cooling mode of the indoor unit 15 the description of the heating mode and the cooling mode of the hydraulic device 13 in the above-mentioned embodiment can be correspondingly referred to.
  • the indoor unit 15 includes a fan. When the indoor unit 15 is located in the indoor space, the indoor unit 15 can circulate and replace the air in the indoor space by turning on the fan to realize the fresh air mode of the indoor unit 15.
  • the compressor 21 has a maximum refrigerant output threshold.
  • the work load of the outdoor unit 11 will increase accordingly. It can be understood that, in some embodiments, when the compressor 21 is in an operating state corresponding to the maximum refrigerant output threshold, the problem of insufficient output power of the hydraulic device 13 is likely to occur, resulting in a reduction in the working efficiency of the hydraulic device 13 and affecting the use Experience.
  • the air conditioning system can work by allowing only one of the hydraulic device and the indoor unit to operate in a corresponding time period. In this case, the user's demand for preferential operation of the hydraulic device under some circumstances cannot be met.
  • the first acquiring module 210 can acquire The mode command to the hydraulic device 13 and the current operation mode of the indoor unit 15.
  • the first determining module 230 may determine the final operating mode corresponding to the air conditioning system 100.
  • the mode command includes an operation demand signal of the hydraulic device 13, and the air conditioning system 100 can determine the operation mode of the hydraulic device 13 to be executed according to the operation demand signal of the hydraulic device 13.
  • the first obtaining module 210 may obtain the current operation mode of the indoor unit 15 by receiving a signal sent by the indoor unit 15.
  • the second acquisition module 250 when the hydraulic device 13 is running and the indoor unit 15 has operating requirements (for example, when the indoor unit 15 is shut down, the indoor unit 15 is controlled to enter the heating mode), the second acquisition module 250 The mode command of the indoor unit 15 and the current operation mode of the hydraulic device 13 can be obtained. According to the information acquired by the second acquisition module 250, the second determination module 270 may determine the final operation mode corresponding to the air conditioning system 100. In one embodiment, the mode command includes the operation demand signal of the indoor unit 15, and the air conditioning system 100 can determine the operation mode of the indoor unit 15 to be executed according to the operation demand signal of the indoor unit 15. The second acquiring module 250 may acquire the current operating mode of the hydraulic device 13 by receiving the signal sent by the hydraulic device 13.
  • the mode command may include the attribute state information of the hydraulic device 13 (or the indoor unit 15).
  • the air-conditioning system 100 can determine that the current attribute status of the hydraulic device 13 is poor and cannot continue to operate, thereby issuing a reminder that the hydraulic device 13 needs maintenance.
  • the air-conditioning system 100 can control the other to start operation. If the hydraulic device 13 and the indoor unit 15 are allowed to operate at the same time, it will increase The load of the air conditioning system 100. In this case, the air-conditioning system 100 can determine the final operation mode of the air-conditioning system 100 according to the current operation of the hydraulic device 13 and the indoor unit 15 or the operation mode to be executed, so as to avoid the insufficient capacity of the outdoor unit 11, and at the same time It can also ensure sufficient operating efficiency.
  • the first acquisition module 210 and the second acquisition module 250 may belong to the same component of the air conditioning system 100, or may belong to different components of the air conditioning system 100.
  • the first determining module 230 and the second determining module 270 may belong to the same component of the air conditioning system 100, or may belong to different components of the air conditioning system 100. There is no limitation here.
  • the operation mode of the hydraulic device 13 includes a heating mode, a cooling mode, and a hot water mode.
  • the final operating mode includes a mutually exclusive operating mode and a first intermittent operating mode.
  • step S130 including:
  • Step S210 when the operating mode to be executed by the hydraulic device 13 is the heating mode or the cooling mode, it is determined that the final operating mode is the mutually exclusive operating mode;
  • Step S230 When the operating mode to be executed by the hydraulic device 13 is the hot water heating mode, it is determined that the final operating mode is the first intermittent operating mode.
  • step S170 including:
  • Step S250 when the current operation mode of the hydraulic device 13 is the heating mode or the cooling mode, it is determined that the final operation mode is the mutually exclusive operation mode;
  • Step S270 When the current operation mode of the hydraulic device 13 is the hot water heating mode, it is determined that the final operation mode is the first intermittent operation mode.
  • the control method of the embodiment of the present application can be implemented by the control device 200 of the embodiment of the present application.
  • the first determining module 230 is used for determining that the final operating mode is the mutually exclusive operating mode when the operating mode to be executed by the hydraulic device 13 is the heating mode or the cooling mode;
  • the operating mode to be executed by the device 13 is the hot water heating mode, it is determined that the final operating mode is the first intermittent operating mode.
  • the second determining module 270 is used for determining that the final operating mode is the mutually exclusive operating mode when the current operating mode of the hydraulic device 13 is the heating mode or the cooling mode; and for determining that the current operating mode of the hydraulic device 13 is heating In the case of the water mode, it is determined that the final operation mode is the first intermittent operation mode. In this way, the operation modes of the hydraulic device 13 and the indoor unit 15 can be adjusted according to different usage conditions, so as to ensure that the outdoor unit 11 can bear the load generated during the operation of the hydraulic device 13.
  • Table 1 shows the relationship between the operation mode and the final operation mode of the hydraulic device 13 and the indoor unit 15 corresponding to the above-mentioned embodiment.
  • the operation mode of the hydraulic device 13 (including the current operation mode and the operation mode to be executed) is the hot water mode, it may be determined to control the operation of the air conditioning system 100 in the first intermittent operation mode.
  • the operation mode of the hydraulic device 13 is the heating mode or the cooling mode
  • the hydraulic device 13 needs to enter the hot water production mode it is determined whether the hydraulic device 13 needs to be operated preferentially, so that the air-conditioning system 100 operates in the corresponding final operation mode to meet the different needs of users.
  • the first intermittent operation mode is that when the operation mode of the hydraulic device 13 is the hot water heating mode, the operation of the outdoor unit 11 is controlled in the hot water heating mode of the hydraulic device 13, and the operation of the hydraulic device 13 is When the temperature meets the first preset temperature condition or the hydraulic device 13 is shut down, the operation of the air-conditioning system 100 is controlled in the operation mode of the indoor unit 15.
  • step S230 when the indoor unit 15 is running, the first acquiring module 210 will acquire the mode instruction that the hydraulic device 13 is about to enter the hot water heating mode, so that the first determining module 230 can determine the first An intermittent operation mode controls the operation of the air conditioning system 100.
  • control module 290 controls the hydraulic device 13 to operate in the hot water mode, and controls the indoor unit 15 to enter a non-operating state (such as a standby state or shut down) until the temperature of the hydraulic device 13 meets the first preset temperature condition or the hydraulic device 13 is shut down, and the control module 290 controls the indoor unit 15 to re-operate in the previous operation mode, and the outdoor unit 11 operates corresponding to the operation mode of the indoor unit 15.
  • a non-operating state such as a standby state or shut down
  • the indoor unit 15 may have an operating demand.
  • the second obtaining module 250 obtains the mode instruction of the indoor unit 15, so that the second determining module 270 can determine to control the operation of the air conditioning system 100 in the first intermittent operation mode.
  • the control module 290 controls the hydraulic device 13 to still run in the hot water mode, and controls the indoor unit 15 to enter a non-operational state until the temperature of the hydraulic device 13 meets the first preset temperature condition or the hydraulic device 13 shuts down, the control module 290 controls the indoor unit 15 is turned on, and the outdoor unit 11 runs corresponding to the operation mode of the indoor unit 15.
  • the air conditioning system 100 controls the operation of the hydraulic device 13 in the hot water mode of the hydraulic device 13 , So that the outdoor unit 11 corresponds to the hot water heating mode of the hydraulic device 13 and has sufficient capacity to carry the load generated by the hydraulic device 13, so that the hydraulic device 13 has sufficient hot water efficiency while giving priority to hot water. .
  • the mode command can be sent by the hydraulic device 13 or the indoor unit 15 through a set program, or it can be sent manually through a remote control, smart phone, notebook computer, wearable device, other household appliances and other terminals. .
  • the mode command can be sent through wired transmission or wireless transmission.
  • the temperature of the hydraulic device 13 may be the temperature of any pipe in the hydraulic device 13 or the temperature of other components in the hydraulic device 13.
  • the temperature of the hydraulic device 13 satisfies the first preset temperature condition, that is, the temperature in the hydraulic device 13 reaches the set temperature range without the need for the hydraulic device 13 to continue to operate.
  • the temperature of the hydraulic device 13 is the temperature at the water outlet 133, the set temperature range is greater than or equal to 70 degrees, and the temperature at the water outlet 133 is greater than or equal to In the case of 70 degrees, the temperature of the hydraulic device 13 meets the first preset temperature condition.
  • the temperature of the hydraulic device 13 is the temperature at the water tank 35, and the set temperature range is greater than or equal to 65 degrees. When the temperature at the water tank 35 is greater than or equal to 65 degrees, the temperature of the hydraulic device 13 Meet the first preset temperature condition.
  • the set temperature range may be the same or different.
  • the air conditioning system 100 is preset with a first preset temperature threshold, and the first preset temperature condition is that the temperature of the hydraulic device 13 in the hot water heating mode is greater than or equal to the first preset temperature threshold.
  • the shutdown of the hydraulic device 13 may be that when the temperature of the hydraulic device 13 reaches a set temperature range, the control module 290 controls the hydraulic device 13 to shut down. In the above situation, the control module 290 can control the operation of the indoor unit 15 (for example, according to the operation mode of the indoor unit 15 previously operated, or enter the operation mode to be executed).
  • the first preset temperature threshold may be a value set manually or a value set by default. There is no limitation here.
  • the mutually exclusive operating mode is to control the operation of the outdoor unit 11 in the operating mode of the first operating mode of the hydraulic device 13 and the indoor unit 15, and the temperature of the first operating one satisfies the second preset temperature condition or In the case of shutting down the first operation, the outdoor unit 11 is controlled to operate in another operation mode.
  • the indoor unit 15 is operated first, and the air-conditioning system 100 determines to operate in the mutually exclusive operation mode through the first determining module 230.
  • the outdoor unit 11 operates corresponding to the current operating mode of the indoor unit 15, and the hydraulic device 13 is in a non-operating state.
  • the hydraulic device 13 operates in the operating mode to be executed, and the outdoor unit 11 is controlled to operate in the operating mode to be executed corresponding to the hydraulic device 13 .
  • step S250 the hydraulic device 13 is operated first, and the air-conditioning system 100 determines to operate in the mutually exclusive operation mode through the second determining module 270.
  • the outdoor unit 11 operates corresponding to the current operating mode of the hydraulic device 13, and the indoor unit 15 is in a non-operating state.
  • the indoor unit 15 operates in the operating mode to be executed, and the outdoor unit 11 is controlled to operate in the operating mode to be executed corresponding to the indoor unit 15 .
  • the temperature of the first operating one may be the temperature of any pipe in the hydraulic device 13 or the temperature of other components in the hydraulic device 13.
  • the temperature of the first to run can be the temperature of any place in the indoor unit 15 or the temperature of the air in the space where the indoor unit 15 is located.
  • the indoor unit 15 is provided with a temperature sensing element for detecting the air temperature in the space where it is located.
  • the temperature sensing element includes but is not limited to a temperature sensing bag and a temperature probe.
  • the indoor unit 15 that runs first is the indoor unit 15.
  • the temperature of the indoor unit 15 is the temperature of the space where the indoor unit 15 is located, and the set temperature range is greater than or equal to 30 degrees If the temperature of the space where the indoor unit 15 is located is greater than or equal to 30 degrees, the temperature of the indoor unit 15 meets the second preset temperature condition.
  • the indoor unit 15 that runs first is the indoor unit 15.
  • the temperature of the indoor unit 15 is the temperature of the pipe connected to the indoor unit 15, and the set temperature range is greater than or equal to 35 degrees. When the temperature of the pipeline is greater than or equal to 35 degrees, the temperature of the indoor unit 15 meets the second preset temperature condition.
  • the set temperature range may be the same or different.
  • the hydraulic device 13 runs first and the operating mode is heating mode
  • the hydraulic device 13 may be preset with a second preset temperature threshold
  • the second preset temperature condition is that the temperature of the hydraulic device 13 is heating In the mode, it is greater than or equal to the second preset temperature threshold.
  • the shutdown of the first operation may be the control module 290 controlling the shutdown of the first operation when the temperature of the first operation reaches the set temperature range. In the above situation, the control module 290 can control another operation (for example, according to the operation mode of the previous operation, or according to the operation mode to be executed), and the outdoor unit 11 operates corresponding to the other operation mode.
  • the second preset temperature threshold may be a value set manually or a value set by default. It can be understood that for the embodiment in which the hydraulic device 13 runs first and the embodiment in which the indoor unit 15 runs first, the second preset temperature condition may be the same or different.
  • first intermittent operation mode and the mutually exclusive operation mode in the foregoing embodiments are also applicable to other embodiments.
  • the following embodiments related to the first intermittent operation mode and the mutually exclusive operation mode please refer to the above embodiments, and will not be expanded in detail.
  • the operation mode of the hydraulic device 13 includes a heating mode, a cooling mode, and a hot water mode.
  • the operation mode of the indoor unit 15 includes a heating mode, a cooling mode, and a fresh air mode.
  • the final operation mode includes simultaneous operation mode, mode conflict mode and the first intermittent operation mode.
  • step S130 includes:
  • Step S310 When the operation mode to be executed by the hydraulic device 13 is the heating mode and the current operation mode of the indoor unit 15 is the heating mode, or when the operation mode to be executed by the hydraulic device 13 is the cooling mode and the indoor unit 15 When the current operation mode is the cooling mode, or when the operation mode to be executed by the hydraulic device 13 is the cooling mode and the current operation mode of the indoor unit 15 is the fresh air mode, it is determined that the final operation mode is the simultaneous operation mode;
  • Step S320 The operating mode to be executed in the hydraulic device 13 is the heating mode and the current operating mode of the indoor unit 15 is the cooling mode, or the operating mode to be executed in the hydraulic device 13 is the heating mode and the current operating mode of the indoor unit 15 In the case of the fresh air mode, or in the case where the operating mode to be executed by the hydraulic device 13 is the cooling mode and the current operating mode of the indoor unit 15 is the heating mode, it is determined that the final operating mode is the mode conflict mode;
  • Step S330 When the operating mode to be executed by the hydraulic device 13 is the hot water heating mode, it is determined that the final operating mode is the first intermittent operating mode.
  • step S170 includes:
  • Step S340 When the operation mode of the indoor unit 15 to be executed is the heating mode and the current operation mode of the hydraulic device 13 is the heating mode, or the operation mode to be executed of the indoor unit 15 is the cooling mode and the hydraulic device 13 When the current operation mode is the cooling mode, or when the operation mode of the indoor unit 15 to be executed is the fresh air mode and the current operation mode of the hydraulic device 13 is the cooling mode, it is determined that the final operation mode is the simultaneous operation mode;
  • Step S350 When the operation mode to be executed of the indoor unit 15 is the cooling mode and the current operation mode of the hydraulic device 13 is the heating mode, or the operation mode to be executed of the indoor unit 15 is the fresh air mode and the current operation mode of the hydraulic device 13 When the operation mode is the heating mode, or when the operation mode to be executed by the indoor unit 15 is the heating mode and the current operation mode of the hydraulic device 13 is the cooling mode, it is determined that the final operation mode is the mode conflict mode;
  • Step S360 When the current operation mode of the hydraulic device 13 is the hot water heating mode, it is determined that the final operation mode is the first intermittent operation mode.
  • the control method of the embodiment of the present application can be implemented by the control device 200 of the embodiment of the present application.
  • the first determining module 230 is used when the operating mode of the hydraulic device 13 to be executed is the heating mode and the current operating mode of the indoor unit 15 is the heating mode, or when the hydraulic device 13 is waiting
  • the executed operation mode is the cooling mode and the current operation mode of the indoor unit 15 is the cooling mode, or when the operation mode to be executed by the hydraulic device 13 is the cooling mode and the current operation mode of the indoor unit 15 is the fresh air mode
  • Determine that the final operation mode is the simultaneous operation mode; and is used when the operation mode to be executed in the hydraulic device 13 is heating mode and the current operation mode of the indoor unit 15 is the cooling mode, or the operation mode to be executed in the hydraulic device 13 is heating Mode and the current operation mode of the indoor unit 15 is the fresh air mode, or when the operation mode to be executed by the hydraulic device 13 is the cooling mode and the current operation mode of the indoor unit 15 is the heating mode, it is determined that the final operation mode is the cooling
  • the second determining module 270 is used when the operating mode of the indoor unit 15 to be executed is the heating mode and the current operating mode of the hydraulic device 13 is the heating mode, or when the operating mode of the indoor unit 15 is the cooling mode and When the current operation mode of the hydraulic device 13 is the cooling mode, or when the operation mode of the indoor unit 15 to be executed is the fresh air mode and the current operation mode of the hydraulic device 13 is the cooling mode, the final operation mode is determined to be the simultaneous operation mode ; And used in the case where the indoor unit 15 to be executed is the cooling mode and the current operation mode of the hydraulic device 13 is the heating mode, or the indoor unit 15 is to be executed in the fresh air mode and the hydraulic device 13 When the current operation mode is the heating mode, or when the operation mode to be executed by the indoor unit 15 is the heating mode and the current operation mode of the hydraulic device 13 is the cooling mode, determine the final operation mode as the mode conflict mode; and It is used to determine that the final operation mode is the first intermittent operation mode when the current operation mode of the hydraulic device 13 is the hot water heating mode
  • Table 2 shows the relationship between the operation mode and the final operation mode of the hydraulic device 13 and the indoor unit 15 corresponding to the above-mentioned embodiment.
  • the air conditioning system 100 when it is determined that the operation mode of the hydraulic device 13 (including the current operation mode and the operation mode to be executed) is the hot water mode, it may be determined that the air conditioning system 100 will operate in the first intermittent operation mode. When it is determined that the operation modes of the hydraulic device 13 and the indoor unit 15 are both heating mode or cooling mode (the indoor unit 15 may be a fresh air mode), the air conditioning system 100 will operate in a simultaneous operation mode. When it is determined that the operation mode of one of the hydraulic device 13 and the indoor unit 15 is the heating mode and the operation mode of the other is the cooling mode (the indoor unit 15 may be the fresh air mode), the air conditioning system 100 will operate in the mode conflict mode.
  • the air-conditioning system 100 By judging whether the hydraulic device 13 needs to enter the hot water heating mode, and combining the specific operation modes of the hydraulic device 13 and the indoor unit 15, the air-conditioning system 100 operates in the corresponding final operation mode, thereby meeting different demands on the air-conditioning system 100.
  • the mode conflict mode is to control the operation of the outdoor unit 11 in the operation mode of the hydraulic device 13 and the indoor unit 15 that operates first.
  • control the other In the case of a mode conflict between the current operating mode of the first running mode and the other running mode to be executed, control the other to enter the standby state and issue a mode conflict prompt until the temperature of the first running one meets the third preset temperature Condition or a shutdown that runs first.
  • the hydraulic device 13 runs first and the operating mode is the heating mode, the D port and the E port of the four-way valve 23 are connected, and the C port and the S port are connected.
  • the second acquiring module 250 acquires the mode instruction of the indoor unit 15 to enter the cooling mode
  • the four-way valve 23 needs to be converted to the D port to the C port communication and the E port communication.
  • this will prevent the hydraulic device 13 from continuing to perform the heating mode, that is, the operation mode between the hydraulic device 13 and the indoor unit 15 conflicts.
  • the control module 290 controls the indoor unit 15 to enter the standby state so that the indoor unit 15 will not operate, and will send out a reminder of the mode conflict of the indoor unit 15 at the same time user.
  • the air conditioning system 100 includes a reminder (not shown).
  • Reminders include but are not limited to buzzers, LED lights, display screens, speakers, etc.
  • the indoor unit 15 can send out to the user through at least one of alarm sounds, lights with specific changing patterns, text on the display screen, and voice. The prompt message of the indoor unit 15 mode conflict.
  • the temperature of the first running one satisfies the third preset temperature condition, which means that the temperature of the first running one reaches the set temperature range without continuing to run.
  • the hydraulic device 13 that runs first is the hydraulic device 13, and the hydraulic device 13 may be preset with a third preset temperature threshold.
  • the third preset temperature condition is that the temperature of the hydraulic device 13 is greater than or equal to the third preset temperature threshold.
  • the shutdown that runs first may be the shutdown that is run first by the control module 290 when the temperature reaches a set temperature range. In the above case, the control module 290 can control another operation (for example, according to the operation mode of the previous operation, or according to the operation mode to be executed), and the outdoor unit 11 operates in accordance with the other operation mode.
  • the third preset temperature threshold may be a value set manually or a value set by default. It can be understood that for the embodiment in which the hydraulic device 13 runs first and the embodiment in which the indoor unit 15 runs first, the third preset temperature condition may be the same or different.
  • the temperature of the hydraulic device 13 may be the temperature of any pipe in the hydraulic device 13 or the temperature of other components in the hydraulic device 13.
  • the temperature of the first to run can be the temperature of any place in the indoor unit 15 or the temperature of the air in the space where the indoor unit 15 is located.
  • the indoor unit 15 is provided with a temperature sensing element for detecting the air temperature in the space where it is located.
  • the temperature sensing element includes but is not limited to a temperature sensing bag and a temperature probe.
  • the first acquisition module 210 or the second acquisition module 250 acquires that the operation modes of the hydraulic device 13 and the indoor unit 15 are both heating modes.
  • the first determination module 230 or the second determination module 270 may determine that the final operation mode of the air conditioning system 100 is the simultaneous operation mode. Please refer to Fig. 3 again, the hydraulic device 13 is controlled to enter the heating mode and the indoor unit 15 is controlled to enter the heating mode through the control module 290, and the D port of the control four-way valve 23 is connected to the E port and the C port is connected to the S port.
  • the outdoor unit 11 will be able to operate corresponding to the heating mode of the hydraulic device 13 and the heating mode of the indoor unit 15, so as to realize the heating function of the hydraulic device 13 and the heating function of the indoor unit 15 at the same time, satisfying the requirements of the hydraulic device 13 and the indoor unit 15 demand for simultaneous heating.
  • the outdoor unit 11 will be able to operate corresponding to the heating mode of the hydraulic device 13 and the heating mode of the indoor unit 15, so as to realize the heating function of the hydraulic device 13 and the heating function of the indoor unit 15 at the same time, satisfying the requirements of the hydraulic device 13 and the indoor unit 15 demand for simultaneous heating.
  • mode conflict mode and the simultaneous operation mode in the above embodiments can also be applied to other embodiments. You can refer to the above embodiments. In order to avoid redundancy, the following embodiments involve the mode conflict mode and At the same time, the part of the operating mode can refer to the above-mentioned implementation mode, and will not be expanded in detail.
  • the final operation mode of the air-conditioning system 100 can be selected according to different requirements. For example, controlling the air-conditioning system 100 to operate in a simultaneous operation mode can enable the hydraulic device 13 and the indoor unit 15 to operate at the same time (such as heating or cooling at the same time); controlling the air-conditioning system 100 to operate in a mode conflict mode can ensure that the hydraulic device 13 and the indoor unit 15
  • the first running one of the machines 15 can continue to run; the air-conditioning system 100 is controlled to run in the first intermittent operation mode to meet the priority of hot water production.
  • the operation mode of the hydraulic device 13 includes a heating mode, a cooling mode, and a hot water mode.
  • the final operating mode includes a mutually exclusive operating mode and a second intermittent operating mode.
  • step S130 includes:
  • Step S410 when the operating mode to be executed by the hydraulic device 13 is the heating mode or the cooling mode, it is determined that the final operating mode is the mutually exclusive operating mode;
  • Step S430 When the operating mode to be executed by the hydraulic device 13 is the hot water heating mode, it is determined that the final operating mode is the second intermittent operating mode.
  • step S170 includes:
  • Step S450 When the current operation mode of the hydraulic device 13 is the heating mode or the cooling mode, it is determined that the final operation mode is the mutually exclusive operation mode;
  • Step S470 When the current operation mode of the hydraulic device 13 is the hot water heating mode, it is determined that the final operation mode is the second intermittent operation mode.
  • the control method of the embodiment of the present application can be implemented by the control device 200 of the embodiment of the present application.
  • the first determining module 230 is used for determining that the final operating mode is the mutually exclusive operating mode when the operating mode to be executed by the hydraulic device 13 is the heating mode or the cooling mode;
  • the operation mode to be executed by the device 13 is the hot water heating mode, it is determined that the final operation mode is the second intermittent operation mode.
  • the second determining module 270 is used for determining that the final operating mode is the mutually exclusive operating mode when the current operating mode of the hydraulic device 13 is the heating mode or the cooling mode; and for determining that the current operating mode of the hydraulic device 13 is heating In the case of the water mode, it is determined that the final operation mode is the second intermittent operation mode.
  • the control module 290 is used to control the operation of the air conditioning system 100 in the mutually exclusive operation mode or the second intermittent operation mode.
  • Table 3 shows the relationship between the operation mode and the final operation mode of the hydraulic device 13 and the indoor unit 15 corresponding to the above-mentioned embodiment.
  • the air conditioning system 100 when it is determined that the operation mode of the hydraulic device 13 is the hot water mode, it can be determined that the air conditioning system 100 will operate in the second intermittent operation mode; when it is determined that the operation mode of the hydraulic device 13 is the heating mode or the cooling mode In this case, it can be determined that the air-conditioning system 100 will operate in a mutually exclusive operation mode.
  • the hydraulic device 13 needs to enter the hot water production mode it is determined whether the hydraulic device 13 needs priority operation, so that the air-conditioning system 100 runs in the corresponding final operation mode, so as to meet the different requirements of the air-conditioning system 100.
  • the second intermittent operation mode is to control the operation of the outdoor unit 11 in an operation mode of the hydraulic device 13 and the indoor unit 15 that operates first.
  • the operation of the outdoor unit 11 is controlled in the operation mode to be executed by the hydraulic device 13 ;
  • the indoor unit 15 is to be executed in the operating mode Control the operation of the outdoor unit 11.
  • step S430 when the indoor unit 15 is running, the first acquiring module 210 will acquire the mode instruction for the hydraulic device 13 to enter the hot water heating mode, so that the first determining module 230 It is determined that the air conditioning system 100 operates in the second intermittent operation mode.
  • the control module 290 controls the hydraulic device 13 to operate in the hot water mode, and controls the indoor unit 15 to enter a non-operating state (such as standby mode) to ensure that the hot water demand is met first.
  • a non-operating state such as standby mode
  • the control module 290 controls the hydraulic device 13 to enter the non-operating mode.
  • the first preset duration can be selected according to specific conditions, or it can be calibrated through testing.
  • the indoor unit 15 may have an operating demand.
  • the second acquiring module 250 will acquire the operating mode instruction of the indoor unit 15 so that the second determining module 270 can determine that the air conditioning system 100 is operating in the second intermittent operating mode.
  • the control module 290 controls the hydraulic device 13 to still operate in the hot water mode and controls the indoor unit 15 to enter a non-operating state until the temperature of the hydraulic device 13 meets the fourth preset temperature condition.
  • the control module 290 controls the indoor unit 15 to enter a non-operating state , Until the hydraulic device 13 runs for the second preset period of time. It is ensured that the hydraulic device 13 can complete the work, and the outdoor unit 11 will not increase a large load due to the simultaneous operation of the hydraulic device 13 and the indoor unit 15.
  • the second preset duration can be selected according to specific conditions, or it can be calibrated through testing.
  • the temperature of the hydraulic device 13 may be the temperature of any pipe in the hydraulic device 13 or the temperature of other components in the hydraulic device 13.
  • the temperature of the hydraulic device 13 satisfies the fourth preset temperature condition, that is, the temperature in the hydraulic device 13 reaches the set temperature range without the need for the hydraulic device 13 to continue to operate.
  • the hydraulic device 13 is preset with a fourth preset temperature threshold, and the fourth preset temperature condition is that the temperature of the hydraulic device 13 in the hot water heating mode is greater than or equal to the fourth preset temperature threshold.
  • the shutdown of the hydraulic device 13 may be that when the temperature reaches a set temperature range, the control module 290 controls the hydraulic device 13 to shutdown.
  • control module 290 can control the operation of the indoor unit 15 (for example, according to the operation mode of the indoor unit 15 previously operated, or enter the operation mode to be executed).
  • the fourth preset temperature threshold may be a value set manually or a value set by default. There is no limitation here.
  • the air conditioning system 100 may record the number of times the hydraulic device 13 is turned on. Specifically, in one embodiment, when the air-conditioning system 100 is turned on and the hydraulic device 13 is turned on, the hydraulic device 13 is the one that runs first. The air conditioning system 100 records that the hydraulic device 13 is turned on for the first time.
  • the control module 290 controls the indoor unit 15 to enter a non-operating state.
  • the temperature of the hydraulic device 13 meets the fourth preset temperature condition, or the hydraulic device 13 runs for a second preset period of time, the hydraulic device 13 is turned off and the indoor unit 15 is turned on.
  • the control module 290 controls the indoor unit 15 to switch from the state corresponding to the current operating mode to the non-operating state , And control the hydraulic device 13 to open.
  • the air conditioning system 100 records that the hydraulic device 13 is turned on for the second time. When the temperature of the hydraulic device 13 meets the fourth preset temperature condition, or the hydraulic device 13 runs for a second preset period of time, the hydraulic device 13 is turned off and the indoor unit 15 is switched to the state corresponding to the previous operation mode again.
  • the control module 290 controls the hydraulic device 13 to turn on.
  • the air conditioning system 100 records that the hydraulic device 13 is turned on for the third time. Moreover, in such an embodiment, when the hydraulic device 13 is operated first and the number of opening times of the hydraulic device 13 is three or more times, the hydraulic device 13 needs to wait for the indoor unit 15 to complete the work before it can be turned on.
  • the indoor unit 15 when the air conditioning system 100 is turned on and the indoor unit 15 is turned on, the indoor unit 15 is the one that runs first.
  • the control module 290 controls the indoor unit 15 to switch from the state corresponding to the current operating mode to the non-operating state.
  • the temperature of the hydraulic device 13 meets the fourth preset temperature condition, or the hydraulic device 13 runs for a second preset period of time, the hydraulic device 13 is turned off and the indoor unit 15 is switched to the state corresponding to the previous operation mode again.
  • the air conditioning system 100 records that the hydraulic device 13 is turned on for the first time.
  • the control module 290 controls the hydraulic device 13 to enter a non-operating state . Until the indoor unit 15 runs for the first preset time or the indoor unit 15 is turned off, the control module 290 controls the hydraulic device 13 to turn on.
  • the air conditioning system 100 records that the hydraulic device 13 is turned on for the second time. Moreover, in such an embodiment, when the indoor unit 15 operates first and the number of opening times of the hydraulic device 13 is two or more times, the hydraulic device 13 needs to wait for the indoor unit 15 to complete its work before it can be turned on.
  • the air-conditioning system 100 is controlled to operate in the second intermittent operation mode.
  • the hydraulic device 13 When the hydraulic device 13 is turned on for the first time, it can be determined that the priority for hot water is required, so that the hydraulic device 13 is operated preferentially.
  • the hydraulic device 13 In the subsequent use process, when the hydraulic device 13 is turned on for a certain number of times, the hydraulic device 13 needs to wait for the indoor unit 15 to complete the work before it can operate (it can be understood that the hydraulic device 13 can basically meet the requirements when it is turned on for the first time.
  • the final operation mode of the air-conditioning system 100 can be selected according to different requirements. For example, controlling the air-conditioning system 100 to operate in the second intermittent operation mode can enable the hydraulic device 13 to enter the hot water production mode first, and control the hydraulic device 13 and the indoor unit 15 according to the usage of the hydraulic device 13, so as to satisfy the user’s requirements. Different levels of hot water demand; control the air-conditioning system 100 to operate in a mutually exclusive operation mode, only one of the hydraulic device 13 and the indoor unit 15 can operate, which can ensure a relatively ideal operating efficiency.
  • the operation mode of the hydraulic device 13 includes a heating mode, a cooling mode, and a hot water mode.
  • the operation mode of the indoor unit 15 includes a heating mode, a cooling mode, and a fresh air mode.
  • the final operation mode includes a simultaneous operation mode, a mode conflict mode and a second intermittent operation mode. Please refer to FIG. 12, step S130 includes:
  • Step S510 When the operating mode to be executed by the hydraulic device 13 is the hot water mode and the current operation mode of the indoor unit 15 is the heating mode, or the operation mode to be executed by the hydraulic device 13 is the heating mode and the indoor unit
  • the current operation mode of 15 is the heating mode
  • the operation mode to be executed by the hydraulic device 13 is the cooling mode and the current operation mode of the indoor unit 15 is the cooling mode, or when the operation of the hydraulic device 13 is to be executed
  • the mode is the cooling mode and the current operation mode of the indoor unit 15 is the fresh air mode, it is determined that the final operation mode is the simultaneous operation mode;
  • Step S520 The operating mode to be executed in the hydraulic device 13 is the heating mode and the current operating mode of the indoor unit 15 is the cooling mode, or the operating mode to be executed in the hydraulic device 13 is the heating mode and the current operating mode of the indoor unit 15 In the case of the fresh air mode, or in the case where the operating mode to be executed by the hydraulic device 13 is the cooling mode and the current operating mode of the indoor unit 15 is the heating mode, it is determined that the final operating mode is the mode conflict mode;
  • Step S530 When the operation mode to be executed by the hydraulic device 13 is the hot water mode and the current operation mode of the indoor unit 15 is the cooling mode, or the operation mode to be executed by the hydraulic device 13 is the hot water mode and the indoor unit When the current operation mode of 15 is the heating mode, it is determined that the final operation mode is the second intermittent operation mode.
  • step S170 including:
  • Step S540 When the operating mode of the indoor unit 15 to be executed is the heating mode and the current operating mode of the hydraulic device 13 is the hot water mode, or the operating mode to be executed of the indoor unit 15 is the heating mode and the hydraulic device
  • the current operation mode of 13 is the heating mode
  • the operation mode of the indoor unit 15 to be executed is the cooling mode and the current operation mode of the hydraulic device 13 is the cooling mode
  • the operation of the indoor unit 15 is to be executed
  • the mode is the fresh air mode and the current operation mode of the hydraulic device 13 is the cooling mode, it is determined that the final operation mode is the simultaneous operation mode;
  • Step S550 When the current operation mode of the indoor unit 15 to be executed is the cooling mode and the current operation mode of the hydraulic device 13 is the heating mode, or the operation mode to be executed of the indoor unit 15 is the fresh air mode and the hydraulic device 13 When the current operation mode is the heating mode, or when the operation mode to be executed by the indoor unit 15 is the heating mode and the current operation mode of the hydraulic device 13 is the cooling mode, it is determined that the final operation mode is the mode conflict mode;
  • Step S560 When the operation mode of the indoor unit 15 to be executed is the cooling mode and the current operation mode of the hydraulic device 13 is the hot water mode, or the operation mode to be executed of the indoor unit 15 is the fresh air mode and the hydraulic device 13 When the current operation mode is the hot water heating mode, it is determined that the final operation mode is the second intermittent operation mode.
  • the control method of the embodiment of the present application can be implemented by the control device 200 of the embodiment of the present application.
  • the first determining module 230 is used when the operation mode to be executed by the hydraulic device 13 is the hot water mode and the current operation mode of the indoor unit 15 is the heating mode, or when the hydraulic device 13 When the operation mode to be executed is the heating mode and the current operation mode of the indoor unit 15 is the heating mode, or when the operation mode to be executed by the hydraulic device 13 is the cooling mode and the current operation mode of the indoor unit 15 is the cooling mode In this case, or when the operation mode to be executed by the hydraulic device 13 is the cooling mode and the current operation mode of the indoor unit 15 is the fresh air mode, it is determined that the final operation mode is the simultaneous operation mode; The operation mode is heating mode and the current operation mode of indoor unit 15 is cooling mode, or when the operation mode to be executed by hydraulic device 13 is heating mode and the current operation mode of indoor unit 15 is fresh air mode, or in the case of hydraulic When the operating mode to be executed by the device 13
  • the second determining module 270 is used when the operation mode to be executed of the indoor unit 15 is heating mode and the current operation mode of the hydraulic device 13 is the hot water mode, or the operation mode to be executed of the indoor unit 15 is heating Mode and the current operation mode of the hydraulic device 13 is the heating mode, or when the operation mode to be executed by the indoor unit 15 is the cooling mode and the current operation mode of the hydraulic device 13 is the cooling mode, or in the case of the indoor unit 15
  • the final operation mode is determined to be the simultaneous operation mode; and the current operation mode for the indoor unit 15 to be executed is the cooling mode and the hydraulic
  • the current operation mode of the device 13 is the heating mode, or when the operation mode of the indoor unit 15 to be executed is the fresh air mode and the current operation mode of the hydraulic device 13 is the heating mode, or the indoor unit 15 is to be executed
  • the final operating mode is determined to be the simultaneous operation mode.
  • Table 4 is a diagram of the relationship between the operation mode and the final operation mode of the hydraulic device 13 and the indoor unit 15 corresponding to the above-mentioned embodiment.
  • the air conditioning system 100 when it is determined that the operation mode of the hydraulic device 13 (including the current operation mode and the operation mode to be executed) is the hot water heating mode, it may be determined that the air conditioning system 100 will operate in the second intermittent operation mode. When it is determined that the operation modes of the hydraulic device 13 and the indoor unit 15 are both heating mode or cooling mode (the indoor unit 15 may be a fresh air mode), the air conditioning system 100 will operate in a simultaneous operation mode. When it is determined that the operation mode of one of the hydraulic device 13 and the indoor unit 15 is the heating mode and the operation mode of the other is the cooling mode (the indoor unit 15 may be the fresh air mode), the air conditioning system 100 will operate in the mode conflict mode.
  • the air-conditioning system 100 By judging whether the hydraulic device 13 needs to enter the hot water heating mode, and combining the specific operation modes of the hydraulic device 13 and the indoor unit 15, the air-conditioning system 100 operates in the corresponding final operation mode, thereby meeting different demands on the air-conditioning system 100.
  • the final operation mode of the air-conditioning system 100 can be selected according to different requirements. For example, controlling the air-conditioning system 100 to operate in a simultaneous operation mode can enable the hydraulic device 13 and the indoor unit 15 to operate at the same time (such as heating or cooling at the same time); controlling the air-conditioning system 100 to operate in a mode conflict mode can ensure that the hydraulic device 13 and the indoor unit 15
  • the first running one of the machines 15 can continue to run; the air-conditioning system 100 is controlled to run in the second intermittent operation mode, so as to meet the user's different levels of priority for hot water production.
  • FIG. 3 Please refer to FIG. 3, FIG. 5, FIG. 14 and FIG.
  • the final operation mode of the air conditioning system 100 is determined according to the operation mode of the indoor unit 15 and the hydraulic device 13, which can effectively avoid the poor hot water production effect of the hydraulic device 13 due to insufficient capacity, thereby increasing the air conditioner The reliability and comfort of the system 100.
  • control device 200 includes two indoor units 15.
  • the two indoor units 15 form an indoor unit 17.
  • the two indoor units 15 operate in a mode conflict mode (refer to the principle description of the mode conflict mode in the foregoing embodiment).
  • the indoor unit 15 that runs first is executing the heating mode, and the indoor unit 15 that runs later is waiting to execute the cooling mode, and the indoor unit 15 that runs later enters the non-operating state until the indoor unit 15 that runs first.
  • the temperature of the unit 15 satisfies the third preset temperature condition or the indoor unit 15 operating first is shut down, then the control module 290 controls the indoor unit 15 operating afterwards to execute the cooling mode.
  • the operation mode of the indoor unit 17 corresponds to the current operation mode of an indoor unit 15 that is running.
  • the operating mode of the indoor unit 17 is the heating mode; when the indoor unit 15 operating later executes the cooling mode, the indoor unit 17 The operating mode is cooling mode.
  • the first acquisition module 210 is used to acquire the mode instruction of the hydraulic device 13 and the operation mode of the indoor unit 17, and the mode instruction of the hydraulic device 13 includes the operation mode to be executed by the hydraulic device 13.
  • the first determining module 230 is configured to determine the final operation mode of the air conditioning system 100 according to the operation mode to be executed by the hydraulic device 13 and the current operation mode of the indoor unit 17, or according to the operation mode to be executed by the hydraulic device 13.
  • the second acquisition module 250 is used to acquire the mode command of the indoor unit 17 and the current operation mode of the hydraulic device 13, and the mode command of the indoor unit 17 includes the operation mode to be executed by the indoor unit 17.
  • the second determination module 270 is configured to determine the final operation mode of the air conditioning system 100 according to the operation mode to be executed by the indoor unit 17 and the current operation mode of the hydraulic device 13, or according to the current operation mode of the hydraulic device 13.
  • the control module 290 is used to control the operation of the air conditioning system 100 in the final operation mode.
  • the operation mode to be executed by the indoor unit 17 may be a corresponding operation mode to be executed by one of the indoor units 15 or the same operation mode to be executed by at least two indoor units 15.
  • the control module 290 controls the operation of the air-conditioning system 100 in the final operation mode, which means that the control module 290 controls all the indoor units 15 to execute the corresponding operation mode or enter a non-operation state.
  • control device 200 includes more than two indoor units 15, reference may be made to the above-mentioned embodiment, which will not be repeated here.
  • the control device 200 includes a plurality of indoor units 15, the plurality of indoor units 15 are processed in accordance with the mode conflict mode, thereby forming the operation mode of the indoor unit 17.
  • the first acquiring module 210 or the second acquiring module 250 will acquire the operating mode of the hydraulic device 13 and the indoor unit 17, so that the air conditioning system 100 determines the final operating mode according to the operating mode of the hydraulic device 13 and the indoor unit 17.
  • the hydraulic device 13 and the indoor unit 17 enter the corresponding final operation mode. In this way, it can be avoided that the hydraulic device 13 and each indoor unit 15 are compared in operation mode, so that the hydraulic device 13 cannot be operated preferentially.
  • an air conditioning system 300 provided by an embodiment of the present application includes a memory 310, a processor 330, and computer executable instructions stored in the memory 310.
  • the processor 330 is configured to execute the computer executable instructions to implement any of the above. Steps of the control method of the embodiment.
  • the final operation mode of the air conditioning system 300 is determined according to the operation mode of the indoor unit 15 and the hydraulic device 13, which can effectively avoid the poor hot water production effect of the hydraulic device 13 due to insufficient capacity, thereby increasing the air conditioner The reliability and comfort of the system 300.
  • the processor 330 and the memory 310 may be integrated in the controller, or in the control board, or in the control box.
  • the processor 330 may be a central processing unit (Central Processing Unit, CPU), or other general-purpose processors, digital signal processors (Digital Signal Processor, DSP), application specific integrated circuits (Application Specific Integrated Circuit, ASIC), ready-made Field-Programmable Gate Array (FPGA) or other programmable logic devices, discrete gates or transistor logic devices, discrete hardware components, etc.
  • CPU Central Processing Unit
  • DSP Digital Signal Processor
  • ASIC Application Specific Integrated Circuit
  • FPGA Field-Programmable Gate Array
  • the processor 330 may be installed on at least one of the outdoor unit 11, the hydraulic device 13, and the indoor unit 15, or may be installed independently.
  • the processor 330 may perform signal transmission with the outdoor unit 11, the hydraulic device 13, and the indoor unit 15 through wired communication or wireless communication.
  • the embodiment of the present application provides a non-volatile computer-readable storage medium containing computer-executable instructions, which enables the processor to execute any of the above-mentioned embodiments when the computer-executable instructions are executed by one or more processors The steps of the control method.
  • Step S110 Under the condition that the indoor unit 15 is running first, obtain the mode instruction of the hydraulic device 13 and the current operation mode of the indoor unit 15.
  • the mode instruction of the hydraulic device 13 includes the operation mode to be executed by the hydraulic device 13;
  • Step S130 Determine the final operating mode of the air-conditioning system 100 according to the operating mode to be executed by the hydraulic device 13 and the current operating mode of the indoor unit 15, or according to the operating mode to be executed by the hydraulic device 13.
  • Step S140 Control the operation of the air-conditioning system 100 in the final operation mode.
  • step S110, step S130, and step S140 when the indoor unit 15 is running and the hydraulic device 13 needs to be turned on, by performing step S110, step S130, and step S140, the current operation mode of the indoor unit 15 and the operation mode to be executed by the hydraulic device 13 can be obtained, thereby The final operation mode of the air conditioning system 100 is determined, and the hydraulic device 13 and the indoor unit 15 are controlled to operate in the final operation mode.
  • Step S150 Under the condition that the hydraulic device 13 is running first, obtain the mode instruction of the indoor unit 15 and the current operation mode of the hydraulic device 13, and the mode instruction of the indoor unit 15 includes the operation mode of the indoor unit 15 to be executed;
  • Step S170 Determine the final operation mode of the air conditioning system 100 according to the operation mode to be executed by the indoor unit 15 and the current operation mode of the hydraulic device 13, or according to the current operation mode of the hydraulic device 13.
  • Step S180 Control the operation of the air-conditioning system 100 in the final operation mode.
  • step S150, step S170, and step S180 when the hydraulic device 13 is running and the indoor unit 15 needs to be turned on, by performing step S150, step S170, and step S180, the current operation mode of the hydraulic device 13 and the operation mode to be executed by the indoor unit 15 can be obtained, thereby The final operation mode of the air conditioning system 100 is determined, and the hydraulic device 13 and the indoor unit 15 are controlled to operate in the final operation mode.
  • the computer-readable storage medium may be set in the air-conditioning system 100, or may be set in a terminal such as a server, and the air-conditioning system 100 can communicate with the terminal to obtain a corresponding program.
  • the computer-readable storage medium may include: any entity or device capable of carrying a computer program, recording medium, U disk, mobile hard disk, magnetic disk, optical disk, computer memory, read-only memory (ROM, Read-Only Memory), Random Access Memory (RAM, Random Access Memory), and software distribution media, etc.
  • the computer program includes computer program code.
  • the computer program code may be in the form of source code, object code, executable file, or some intermediate forms, etc.
  • the computer-readable storage medium may include: any entity or device capable of carrying computer program code, recording medium, U disk, mobile hard disk, magnetic disk, optical disk, computer memory, read-only memory (ROM, Read-Only Memory), random memory Access memory (RAM, Random Access Memory), and software distribution media, etc.
  • the controller is a single-chip microcomputer chip that integrates a processor, memory, communication module, etc.
  • the processor may refer to the processor included in the controller.
  • the processor can be a central processing unit (Central Processing Unit, CPU), other general-purpose processors, digital signal processors (Digital Signal Processor, DSP), application specific integrated circuits (Application Specific Integrated Circuit, ASIC), ready-made programmable Field-Programmable Gate Array (FPGA) or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc.
  • CPU Central Processing Unit
  • DSP digital signal processors
  • ASIC Application Specific Integrated Circuit
  • FPGA ready-made programmable Field-Programmable Gate Array

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  • Engineering & Computer Science (AREA)
  • Combustion & Propulsion (AREA)
  • Signal Processing (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Chemical & Material Sciences (AREA)
  • Fuzzy Systems (AREA)
  • Mathematical Physics (AREA)
  • Physics & Mathematics (AREA)
  • Human Computer Interaction (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Sustainable Development (AREA)
  • Air Conditioning Control Device (AREA)

Abstract

Procédé de commande, dispositif de commande (200), système de climatisation (100/300) et support d'enregistrement lisible par ordinateur. Le procédé de commande comprend : (S110) à condition qu'une unité intérieure (15) fonctionne en premier, l'obtention d'une instruction de mode d'un dispositif hydraulique (13) et d'un mode de fonctionnement actuel de l'unité intérieure (15) ; (S130) la détermination d'un mode de fonctionnement final d'un système de climatisation (100) en fonction d'un mode de fonctionnement à exécuter du dispositif hydraulique (13) et du mode de fonctionnement actuel de l'unité intérieure (15), ou en fonction d'un mode de fonctionnement à exécuter du dispositif hydraulique (13) ; (S150) à condition que le dispositif hydraulique (13) fonctionne en premier, l'obtention d'une instruction de mode de l'unité intérieure (15) et d'un mode de fonctionnement actuel du dispositif hydraulique (13) ; (S170) la détermination du mode de fonctionnement final du système de climatisation (100) en fonction d'un mode de fonctionnement à exécuter de l'unité intérieure (15) et du mode de fonctionnement actuel du dispositif hydraulique (13), ou en fonction du mode de fonctionnement actuel du dispositif hydraulique (13) ; et (S140/S180) la commande du système de climatisation (100) pour fonctionner dans le mode de fonctionnement final.
PCT/CN2021/089677 2020-06-18 2021-04-25 Procédé de commande, dispositif de commande, système de climatisation et support d'enregistrement lisible par ordinateur WO2021253987A1 (fr)

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CN111692637B (zh) * 2020-06-18 2021-08-20 广东美的制冷设备有限公司 控制方法、控制装置、空调系统和计算机可读存储介质

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